An edgelit multifunctional lighting assembly is configured as a cross tee within a suspended ceiling system and supports at least one ceiling panel and is configurable to produce symmetric and asymmetric targeted light distributions for narrow and wide angle illumination applications.
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1. A multifunctional lighting assembly for use in a suspended ceiling system having a t-bar grid arrangement supporting multiple ceiling panels, the multifunctional lighting assembly comprising;
a) an elongate light assembly comprising;
i. a light guide comprising at least one input edge;
ii. at least one linear array of LED light sources positioned proximate to the at least one input edge;
b) an elongate body comprising an elongate planar base portion having first and second lateral ends, first and second longitudinal ends, a top plane, and a channel located in an interior space of the base portion, the channel configured to receive the elongate light assembly;
c) first and second connecting members each positioned at the first and second longitudinal ends of the elongate body having support portions configured to be attached to the t-bar grid arrangement; and
wherein the multifunctional lighting assembly is configured as a cross tee within the t-bar grid arrangement and supports one or more of the multiple ceiling panels.
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The present disclosure relates to a support assembly for use in a suspended ceiling system. More particularly, the present disclosure relates to a multifunctional ceiling support assembly for use in a suspended ceiling system which typically supports ceiling tiles and lighting apparatuses.
Contemporary buildings, for example, houses or offices often employ a structural ceiling from which is supported a suspended ceiling arrangement. Typically, the suspended ceiling arrangement includes a plurality of ceiling tiles or panels hanging at a distance below the structural ceiling that may vary between only a few inches or several feet depending upon one or more constraints that are typically encountered in the space below the structural ceiling such as presence of HVAC ducting, electrical conduits, or a desired amount of height that should be made available for use in a room below the suspended ceiling arrangement.
In traditional configurations, the suspended ceiling arrangement further includes a plurality of T-bars that are configured to support the plurality of ceiling tiles or panels in position; the plurality of T-bars is suspended from the structural ceiling, for example via an arrangement of wires or rods. Specifically, such an arrangement of the plurality of T-bars provides cells to accommodate the plurality of ceiling tiles or panels therein. Additionally, a flush-finish of lower surfaces of the plurality of T-bars, and the plurality of ceiling tiles or panels are such that they appear as a continuous mono-planar lower ceiling surface. Typical common ceiling tiles sizes arranged in grid arrays include 12″×12″, 12″×24″, 24″×48″, 24″×60″, 24″×72″, 30″×30″, 20″×60″, 30″×60″, 60″×60″, and 48″×48″. Ceiling tiles for a “Lay-In” configuration typically have squared 90 degree edges while ceiling tiles for “Tegular” configurations are typically kerfed on the edges to allow the tiles to protrude slightly below the T-bars or a ceiling plane. Common standard widths of T-bar horizonal portions are 9/16″, 15/16″ and 1.5″. These widths correspond with the apparent spacing between ceiling tiles as seen within a room.
Lighting devices or apparatuses are utilized in many diverse applications, such as in office workspaces, in hospitals, in warehouses, in educational institutions, in cleanrooms, in data centers, in research laboratories, in indoor and outdoor living spaces, in industrial areas, in vehicles and so forth to provide illumination for humans performing visual tasks. Contemporarily, lighting devices are also employed for aesthetic purposes to provide a visually comforting environment to a given person. In traditional configurations of installing these lighting devices, these lighting devices are known to have been affixed to ceilings, walls and other building elements to illuminate their environs.
In contrast to these highly traditional methods of installing the aforementioned lighting devices, some other traditionally configured suspended ceiling arrangements are also known to have been additionally provided with lighting fixtures that are designed to replace 2×2 or 2×4 ceiling tiles in an arrangement that allows for operatively illuminating the surroundings, for example, a cubical space in an office, a corridor of a house, and the like. These light fixtures may also be designed to include as two or three fluorescent tubes as panels with light emitting diodes, for example, in the form of troffers that may require support on all four sides for accomplishing an installation of such light fixtures. Moreover, these lighting fixtures are arranged within the suspended ceiling arrangements to be supported at specific points, or in specific areas, of the suspended ceiling with an intention to achieve an aesthetically pleasant look. However, despite such intentions, the traditional configurations of such suspended ceiling arrangements are incapable of satisfying such desirable luminaires to meet aforementioned expectations.
Major issues that are encountered with the implementation of the traditionally configured suspended ceiling arrangements are that the traditionally configured suspended ceiling arrangements, during installation, are complex to retrofit in addition to being costly to replace during the retro-fitment process. Moreover, in use as a consequence to the implementation of these traditionally configured suspended ceiling arrangements itself, these traditionally configured suspended ceiling arrangements continue to offer a monotonous look and therefore, render the overall suspended ceiling with substantially unappealing aesthetics. On many occasions, an environment or workspace may also be additionally provided with multiple smaller lighting devices such as downlights that help provide an increased, focused, or in other words, specifically-directed light for allowing persons in the room to perform minutely detailed tasks. In many cases, these small lighting devices may include multiple light sources, for example, bulbs and the like. However, such use of multiple small light sources consequentially results in an increase in installation and maintenance costs besides leading to inefficient energy usage, wastage of resources and environmental pollution.
A further issue that is encountered with use of conventionally or traditionally designed suspended ceiling arrangements is that replacing the conventionally designed suspended ceiling arrangements, for example when refurbishing a given building, in which another conventionally or traditionally suspended ceiling arrangement previously exists, generates a lot of waste material that is potentially not straightforward to recycle or reuse. Moreover, such generation of waste material can be environmentally detrimental to achieving an energy efficient planet preferably with a minimal carbon-footprint.
Even further, a number of support elements, for example, the T-bars used together with the ceiling panels for forming the conventional suspended ceiling arrangements lack adequate provisions for enhancing the functionalities besides merely supporting the ceiling panels.
Therefore, taking aforementioned problems into consideration, there exists a need to overcome the aforementioned drawbacks associated with the existing T-bars and lighting devices used in conjunction with a suspended ceiling grid arrangement.
The present disclosure seeks to provide a multifunctional ceiling support assembly for use in forming a suspended ceiling grid arrangement. The multifunctional ceiling support assembly is configured to be easier to manufacture, install and reconfigure after initial installation (for example to achieve one or more additional, or modified, functionalities). Further, the multifunctional ceiling support assembly is inexpensive to manufacture, i.e. owing to the simplified manufacturing and design process, easier to recycle or reuse when a building incorporating the suspended ceiling system is being dismantled or refurbished. Further, the present disclosure seeks to provide the multifunctional ceiling support assembly that is versatile in its use for providing an improved ease of control in the installation and use of light fixtures while also accommodating one or more concomitant power cable connections for rendering power supply to these light fixtures. Furthermore, the present disclosure seeks to provide the multifunctional ceiling support assembly for use as a modular functional fixture that is capable of accommodating various other types of user-operable objects such as optical elements, power modules, speakers, and the like. Furthermore, the present disclosure seeks to provide a robust and flexible multifunctional ceiling support assembly that can be configured easily and quickly by a user during an installation process whilst suiting various requirements that may be encountered during the installation process. Principally, the multifunctional ceiling support assembly of the present disclosure can function as a new T-bar (i.e. can replace conventional T-bar), can be used in conjunction with existing T-bar of the suspended ceiling grid arrangement, act as lighting device or apparatus, and enables in supporting ceiling tiles thereon. Also, the multifunctional ceiling support assembly provides versatility in terms of overall construction of the suspended ceiling grid arrangement, essentially in terms of lighting arrangement and supporting ceiling tiles.
In one aspect, the present disclosure provides a multifunctional ceiling support assembly for use in a suspended ceiling system having a T-bar grid arrangement supporting ceiling tiles. The multifunctional ceiling support assembly comprises an elongate body comprising an elongate planar base portion having first and second lateral ends, first and second longitudinal ends, and a top plane; first and second connecting members each positioned at the first and second longitudinal ends of the elongate body and configured with support portions capable of attachment to the T-bar grid arrangement; and a third connecting member mounted on the top plane of the elongate body, the third connecting extends up from the elongate body and functions to separate and position ceiling tiles within the T-bar grid arrangement.
Optionally, each of the first and second connecting members comprises a first support portion, a second support portion integral with the first support portion, and a third support portion integral with the second support portion. The first support portions of the first and second connecting members are adapted to be coupled to the top plane of the base portion at the first and second longitudinal ends, respectively, using fasteners. The second support portions of the first and second connecting members are configured to rest on horizontal legs of two laterally spaced apart T-bars. The third support portions are configured to be coupled with vertical legs of the two laterally spaced apart T-bars.
More optionally, each of the first and second connecting members further comprises a projecting tab integral with the third support portion, and wherein the projecting tab of each of the first and second connecting members is configured to be received by one vertical slot of a vertical leg of the two laterally spaced apart T-bars.
Optionally, the third connecting member comprises a first support portion coupled to the top plane of the base portion, and a second support portion extending vertically from the first support portion, the second support portion comprising a cut-out for receiving an anchor of a T-bar arranged between the two laterally spaced apart T-bars.
Optionally, the elongate body further comprises a first clip and a second clip extending generally upwardly from the top plane at the first and second lateral ends, respectively, of the base portion, wherein the first clip, the second clip and the top plane of the base portion define a first channel therebetween, and a first protrusion and a second protrusion extending generally downwardly from the bottom plane at the first and second lateral ends, respectively, of the base portion, wherein the first protrusion, the second protrusion and the bottom plane of the elongate planar base portion define a second channel therebetween.
Optionally, each of the first, second and third connecting members further comprises an anchoring hole that serves as an attachment point for suspension from a structural ceiling.
Optionally, the multifunctional support assembly is operable to connect two T-bars within the suspended ceiling system.
Optionally, the elongate body houses a light source.
More optionally, the light source comprises a light emitting diode.
Optionally, a width of the elongate body is less than or equal to the width a T-bar within the T-bar grid arrangement.
More optionally, the elongate body is at least partially recessed within tegular edges of two abutting ceiling tiles.
More optionally, a light source is recessed within the tegular edges of two abutting ceiling tiles.
Optionally, a ceiling tile rest upon the top plane of the elongate body.
Optionally, a width of the elongate body is greater than the width of a T-bar within the T-bar grid arrangement.
Optionally, the elongate body is oriented at an angle not parallel or perpendicular to the T-bar grid arrangement.
Optionally, the elongate body houses a reflector.
Optionally, the multifunctional support assembly further comprises a light guide having an input edge within the elongate body.
Optionally, the multifunctional ceiling support assembly further comprises a light source and an upward projecting lens suspended below the elongate body.
Optionally, the multifunctional ceiling support assembly further comprises a component selected from a group consisting of an alarm, sensors, ventilation fan, heater, humidifier, electronic controller, power supply, battery, wireless communication module, light guide, reflector.
Optionally, the multifunctional support assembly of claim 1, further comprising mechanical features, electrical connectors, etc.
Additional aspects, advantages, features and objects of the present disclosure would be made apparent from the drawings and the detailed description of the illustrative embodiments construed in conjunction with the appended claims that follow.
It will be appreciated that features of the present disclosure are susceptible to being combined in various combinations without departing from the scope of the present disclosure as defined by the appended claims.
The summary above, as well as the following detailed description of illustrative embodiments, is better understood when read in conjunction with the appended drawings. For the purpose of illustrating the present disclosure, exemplary constructions of the disclosure are shown in the drawings. However, the present disclosure is not limited to specific methods and instrumentalities disclosed herein. Moreover, those in the art will understand that the drawings are not to scale. Wherever possible, like elements have been indicated by identical numbers.
Embodiments of the present disclosure will now be described, by way of example only, with reference to the following diagrams wherein:
In the accompanying drawings, an underlined number is employed to represent an item over which the underlined number is positioned or an item to which the underlined number is adjacent. A non-underlined number relates to an item identified by a line linking the non-underlined number to the item. When a number is non-underlined and accompanied by an associated arrow, the non-underlined number is used to identify a general item at which the arrow is pointing.
The following detailed description illustrates embodiments of the present disclosure and ways in which they can be implemented. Although some modes of carrying out the present disclosure have been disclosed, those skilled in the art would recognize that other embodiments for carrying out or practicing the present disclosure are also possible.
In overview, embodiments of the present disclosure are concerned with a multifunctional ceiling support assembly that functions within a suspended ceiling system to support and align one or more ceiling tiles, connect one or more T-bars or other structural grid elements, and provide a means of connecting suspension cables or other suspension hardware.
Modular ceiling systems are employable to implement suspended ceilings, also referred to herein as “suspended ceiling grid arrangements”. Herein, the term “suspended ceiling grid arrangements” refers to a ceiling including a ceiling grid suspended or hung at a height below a structural ceiling of a given architecture, such as a room of a house, or a building. It will be appreciated that the structural ceiling is an overhead interior surface that covers, and defines, a maximum upper spatial limit of a room. In an example, the structural ceiling may be at a height of 2.5 meters from a floor (not shown) of the room. In such an example, the height below the structural ceiling for holding the suspended ceiling grid arrangement is 0.25 (approximately) metres (meters) from the height of the structural ceiling, i.e. 2.25 (approximately) metres (meters) from a floor of the room. Furthermore, the suspended ceiling grid arrangement is suspended or hung at the height using wires that hang from, and are securely fixed to, the structural ceiling. Optionally, the hanging wires can be hinged, hooked, tied, coupled, plastered securely or affixed to the structural ceiling. In an instance, during installation, the hanging wires are coupled to the structural ceiling to support the suspended ceiling grid arrangement to be hung at the desired height therefrom. Furthermore, the suspended ceiling grid arrangement is supported by the hanging wires at the desired height to provide a gap between the structural ceiling and the suspended ceiling grid arrangement. Beneficially, the gap provides a space for other electrically and/or electronically operated devices to be arranged therebetween.
Typically, the suspended ceiling grid arrangement includes a grid formation constructed using metallic bars (T-bars). The term “T-bars” used herein relates to hardware components such as an elongate rigid spine extending between mutually opposing walls that form terminal ends of the ceiling. Additionally, the T-bars include an inverted T-shaped structure comprising a flat vertical leg (supporting portion) integral to a flat horizontal leg (base portion). Furthermore, the T-bars include either a fixed anchor or an adjustable anchor for attachment to an adjacent member, such as another T-bar(s) or other holding arrangement(s) for securely holding or suspending the T-bar. The T-bars are of various styles, types and sizes and are generally characterized by the grid type. The term “grid type” refers to a property of the T-bar indicating the type, style or size of the T-bar being implemented. Generally, the grid type of the T-bar is a 15/16″ flat style. However, other different grid types or other styles may also be implemented without limiting the scope of the disclosure. For instance, other grid type includes, but is not limited to, a slimline grid type or 9/16″ flats including a 9/16″ slot, a concealed grid type or a semi-concealed grid type. Moreover, larger T-Bars including 1.5″ and 2″ grid type are employed in industrial applications such as clean rooms, data centers, food processing plants and so forth. Optionally, the T-bars are conjoined to the hanging wires, either by hooking, welding, gluing, and so forth. Moreover, the T-bars include tracks or holes to which the hanging wires can be coupled to and/or can be latched onto for supporting (i.e. holding or suspending) the suspended ceiling grid arrangement from the structural ceiling. Furthermore, the T-bars of the suspended ceiling grid arrangement form an array of cells into which ceiling panels can be arranged. Moreover, the array of cells is formed by the grid of horizontal legs of the T-bars. Optionally, the T-bars also include axes (imaginary line) passing through joining of the vertical legs and the horizontal legs. Furthermore, the axes cross each other when two T-bars overlap or cross each other either perpendicularly or at an angle.
Furthermore, the term “ceiling panels” as used herein relates to a lightweight structure, usually a shallow “cuboidal” structure, having a length, a breadth, and a height which are placed within an opening formed by the T-bars for providing a planar lower surface of the suspended ceiling. Optionally, the ceiling panels are fabricated from a porous cellular structure, having gaseous voids therein. Optionally, the ceiling panels are implemented as a plurality of substantially mutually identical panels, wherein each panel has major exterior surfaces that are substantially rectangular in form, for example square in form, when viewed from the given room. In some cases, the ceiling panels may have edges that are adapted to include one or more edgewise protruding lips and/or define one or more edgewise grooves i.e., along a length of the edge for enabling the ceiling panels to be securely held, or supported, during installation onto the grid.
Furthermore, the grid formation is configured to accommodate various electronic and/or electrical devices for providing a plurality of services in the room. Examples of various electronic and electrical devices may include at least one of: lights, alarms, sensors, ventilation fans, heaters, humidifiers, electronic controller, power supply, battery, wireless communication module, light guide, reflector and the like. For example, the suspended ceiling grid arrangement can include a power system for supplying electric power to the various electrically and/or electronically operated devices.
Furthermore, as illustrated in
Furthermore, as illustrated in
As illustrated in
By accommodating the elongated light assembly 104, comprising the PCB 106, the LEDs 107 and the optical element 136 in a compact manner between the first and second protrusions 124, 126, i.e., within the second channel 128 of the elongate body 102, an amount of complexity in the design of the multifunctional ceiling support assembly 100 is simplified to a minimum while an amount of time and effort that is incurred during installation of the ceiling support assembly 100 is also reduced. With continued reference to, and as shown in the view of,
Further, any type of sensors may be implemented for use within the sensor arrangement. For example, the sensors forming part of the sensor arrangement may include one or more of an audio sensor, acoustic sensor, motion sensor, position sensor, proximity sensor, light sensor, ultrasonic sensor and accelerometer. In an example, the sensor arrangement may also be equipped with a sound recognition sensor (e.g. an ultrasound sensor) configured to control the elongate light assembly 104 via another device, such as an ultrasonic hand controller, a near-field wireless device or even ordinary acoustic signals such as human clapping of hands.
Referring now to
As shown best in the view of
The first support portions 140 of the first and second connecting members 134a, 134b are adapted to be coupled to the top plane 110 of the base portion 108 at the first and second longitudinal ends 117 and 119 respectively using fasteners 146. Further, the second support portions 142 of the first and second connecting members 134a, 134b are configured to rest on horizontal legs 14 of two laterally spaced apart T-bars 10b, as shown in the view of
Moreover, as shown in the view of
Each of the first and second connecting members 134a, 134b also includes a support tab 150 integral with the third support portion 144. As shown in the view of
Further, as shown in
As shown best from the views of
Additionally, turning back to, and as shown best in, the view of
Further, as shown in
As shown in the views of
By providing one or more holes 168 in the second support portion 164 of the third connecting member 160, the multifunctional ceiling support assembly 100 is rendered with improved versatility to accommodate for various spatial adjustments, for example, in cases where tolerances would have otherwise been needed to accommodate receipt of the suspension cable therethrough.
Accordingly, from the foregoing description, it is evident that the multifunctional ceiling support assembly 100 of the present disclosure serves to support and align one or more ceiling tiles 20 while connecting one or more T-bars in the grid. Typically, the ceiling tile 20 rest upon the top plane 110 of the elongate body 102. Further, The multifunctional ceiling support assembly 100 also provides a means of connecting the suspension cables or other similar, or dissimilar, suspension hardware thereto. In other words, each of the first, second and third connecting members 134a, 134b, 160 further comprises an anchoring hole, such as the holes 152, 168 that serves as an attachment point for suspension from a structural ceiling.
Referring now to
Moreover, as shown in the view of
In another example as shown in the view of
Although a specific wiring type has been disclosed earlier herein, such type is merely illustrative and hence, non-limiting of this disclosure. As shown best in the view of
Modifications to embodiments of the present disclosure described in the foregoing are possible without departing from the scope of the present disclosure as defined by the accompanying claims. Expressions such as “including”, “comprising”, “incorporating”, have”, “is” used to describe and claim the present disclosure are intended to be construed in a non-exclusive manner, namely allowing for items, components or elements not explicitly described also to be present. Reference to the singular is also to be construed to relate to the plural.
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